| + |
PTGS2 | up-regulates quantity
chemical modification
|
prostaglandin G2(1-) |
0.8 |
| Identifier |
Residue |
Sequence |
Organism |
Cell Line |
| SIGNOR-269770 |
|
|
in vitro |
|
| pmid |
sentence |
| 7592599 |
[14C]Arachidonate metabolism by oPGHS-1 and hPGHS-2 was examined in reactions with a series of GSP/Cox ratios (Fig. 3). The principal metabolite for both isoforms was the endoperoxide PGH2, with lesser amounts of PGF2a, PGE2, PGD2, |
|
| Publications: |
1 |
Organism: |
In Vitro |
| + |
prostaglandin G2(1-) | up-regulates quantity
precursor of
|
prostaglandin H2(1-) |
0.8 |
| Identifier |
Residue |
Sequence |
Organism |
Cell Line |
| SIGNOR-269777 |
|
|
in vitro |
|
| pmid |
sentence |
| 7592599 |
[14C]Arachidonate metabolism by oPGHS-1 and hPGHS-2 was examined in reactions with a series of GSP/Cox ratios (Fig. 3). The principal metabolite for both isoforms was the endoperoxide PGH2, with lesser amounts of PGF2a, PGE2, PGD2, |
|
| Publications: |
1 |
Organism: |
In Vitro |
| + |
PTGS1 | up-regulates quantity
chemical modification
|
prostaglandin G2(1-) |
0.8 |
| Identifier |
Residue |
Sequence |
Organism |
Cell Line |
| SIGNOR-269771 |
|
|
in vitro |
|
| pmid |
sentence |
| 7592599 |
[14C]Arachidonate metabolism by oPGHS-1 and hPGHS-2 was examined in reactions with a series of GSP/Cox ratios (Fig. 3). The principal metabolite for both isoforms was the endoperoxide PGH2, with lesser amounts of PGF2a, PGE2, PGD2, |
|
| Publications: |
1 |
Organism: |
In Vitro |
| + |
prostaglandin H2(1-) | up-regulates quantity
precursor of
|
prostaglandin G2(1-) |
0.8 |
| Identifier |
Residue |
Sequence |
Organism |
Cell Line |
| SIGNOR-269769 |
|
|
in vitro |
|
| pmid |
sentence |
| 7592599 |
[14C]Arachidonate metabolism by oPGHS-1 and hPGHS-2 was examined in reactions with a series of GSP/Cox ratios (Fig. 3). The principal metabolite for both isoforms was the endoperoxide PGH2, with lesser amounts of PGF2a, PGE2, PGD2, |
|
| Publications: |
1 |
Organism: |
In Vitro |